Zhang Huiru, He Qiming, Luo Jianquan, Wan Yinhua, Darling Seth B
State Key Laboratory of Biochemical Engineering, Institute of Process Engineering, Chinese Academy of Sciences, Beijing 100190, P.R. China.
School of Chemical Engineering, University of Chinese Academy of Sciences, Beijing 100049, P.R. China.
ACS Appl Mater Interfaces. 2020 Sep 9;12(36):39948-39966. doi: 10.1021/acsami.0c11136. Epub 2020 Aug 27.
Nanofiltration plays an increasingly large role in many industrial applications, such as water treatment (e.g., desalination, water softening, and fluoride removal) and resource recovery (e.g., alkaline earth metals). Energy consumption and benefits of nanofiltration processes are directly determined by the selectivity of the nanofiltration membranes, which is largely governed by pore-size distribution and Donnan effects. During operation, the separation performance of unmodified nanofiltration membranes will also be impacted (deleteriously) upon unavoidable membrane fouling. Many efforts, therefore, have been directed toward enhancing the selectivity of nanofiltration membranes, which can be classified into membrane fabrication method improvement and process intensification. This review summarizes recent developments in the field and provides guidance for potential future approaches to improve the selectivity of nanofiltration membranes.
纳滤在许多工业应用中发挥着越来越重要的作用,例如水处理(如海水淡化、水软化和除氟)以及资源回收(如碱土金属)。纳滤过程的能耗和效益直接取决于纳滤膜的选择性,而这在很大程度上由孔径分布和唐南效应决定。在运行过程中,未改性的纳滤膜的分离性能也会受到不可避免的膜污染的(有害)影响。因此,许多努力都致力于提高纳滤膜的选择性,这可分为膜制备方法的改进和过程强化。本综述总结了该领域的最新进展,并为未来提高纳滤膜选择性的潜在方法提供指导。